减轻无线传感器网络中插入数据影响的相关分析

Sapon Tanachaiwiwat, A. Helmy
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引用次数: 36

摘要

本文介绍了一种解决无人值守无线传感器网络攻击造成的数据污染问题的新方法。我们提出了一种基于滑动窗口的时空相关分析,称为“异常关系测试(ART)”,以有效地检测,响应和免疫来自各种id冒充者和受损节点的插入欺骗数据。给出了一种系统的方法来确定合适的滑动窗口大小和相关系数阈值。我们的研究表明,观测现象的相关性质并不总是传递的,同一节点集在同一或不同时间段的不同现象可能具有不同的相关系数。我们的模拟结果揭示了异常值百分比和相关系数之间有趣的关系。通过适当的参数设置,ART可以获得较高的攻击检测率(即使在100%插入数据的情况下,相关攻击检测率为90%,随机攻击检测率为94%)。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Correlation analysis for alleviating effects of inserted data in wireless sensor networks
This paper introduces a new approach that addresses data contamination problems from attacks in unattended wireless sensor networks. We propose a sliding-window based spatio-temporal correlation analysis called "Abnormal Relationships Test (ART)" to effectively detect, respond and immune to inserted spoofed data from both various-ID impersonators and compromised nodes. Also a systematic approach is given to identify the appropriate sliding window size and correlation coefficient threshold. Our study shows that correlation property of observed phenomenon is not always transitive, different phenomenon from same set of nodes at the same or different period of time can have different correlation coefficients. Our simulation results reveal interesting relationships of outlier percentage and correlation coefficient. With proper parameter setting ART achieves high attack detection rate (90% for correlated attacks and 94% for random attacks even with 100% data insertion).
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